A practical approach to implementing MLOps with Red Hat OpenShift. See how Red Hat and its technology partners such as Pachyderm and Intel OpenVINO provide a consistent platform across clouds and on-premises hardware.
MLOps with OpenShift provides a practical approach to implementing MLOps workflows on the OpenShift platform. The book begins by introducing key MLOps concepts, including data preparation, model training, and deployment. It then provides an overview of OpenShift, covering the basic blocks of OpenShift, such as containers, pods and operators.
With the basics covered, the book then dives into MLOps workflows on the OpenShift platform. Readers will learn how popular machine learning frameworks are used to train and test models on the platform.
The book will cover Red Hat OpenShift Data Science, an open-source data science and machine learning platform designed to run on the OpenShift platform. Red Hat OpenShift Data Science and partner components provide the building blocks to build and manage data pipelines and deploy and monitor machine learning models. Pachyderm and Intel OpenVINO are two such partner components covered in the book.
By the end of the book, readers will have a solid understanding of MLOps concepts and best practices, as well as the skills and knowledge needed to implement MLOps workflows on the OpenShift platform.
MLOps and DevOps engineers, Data architects and scientists, and developers who want to learn MLOps and its components are the primary audiences. They will learn how to integrate these components for building a complete machine learning lifecycle on the Red Hat OpenShift Data Science platform. Whether you are a data scientist, machine learning engineer, or software developer, "MLOps with OpenShift" is the essential resource for building scalable and efficient machine learning workflows on the OpenShift container platform.
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Ross Brigoli is a consulting architect at Red Hat, where he focuses on designing and delivering solutions around microservices architecture, DevOps, and MLOps with Red Hat OpenShift for various industries. He has two decades of experience in software development and architecture.
Faisal Masood is a cloud transformation architect at AWS. Faisal's focus is to assist customers in refining and executing strategic business goals. Faisal main interests are evolutionary architectures, software development, ML lifecycle, CD and IaC. Faisal has over two decades of experience in software architecture and development.
Build and manage MLOps pipelines with this practical guide to using Red Hat OpenShift Data Science, unleashing the power of machine learning workflowsKey FeaturesGrasp MLOps and machine learning project lifecycle through concept introductions Get hands on with provisioning and configuring Red Hat OpenShift Data Science Explore model training, deployment, and MLOps pipeline building with step-by-step instructions Purchase of the print or Kindle book includes a free PDF eBook Book Description MLOps with OpenShift offers practical insights for implementing MLOps workflows on the dynamic OpenShift platform. As organizations worldwide seek to harness the power of machine learning operations, this book lays the foundation for your MLOps success. Starting with an exploration of key MLOps concepts, including data preparation, model training, and deployment, you'll prepare to unleash OpenShift capabilities, kicking off with a primer on containers, pods, operators, and more. With the groundwork in place, you'll be guided to MLOps workflows, uncovering the applications of popular machine learning frameworks for training and testing models on the platform. As you advance through the chapters, you'll focus on the open-source data science and machine learning platform, Red Hat OpenShift Data Science, and its partner components, such as Pachyderm and Intel OpenVino, to understand their role in building and managing data pipelines, as well as deploying and monitoring machine learning models. Armed with this comprehensive knowledge, you'll be able to implement MLOps workflows on the OpenShift platform proficiently.What you will learnBuild a solid foundation in key MLOps concepts and best practices Explore MLOps workflows, covering model development and training Implement complete MLOps workflows on the Red Hat OpenShift platform Build MLOps pipelines for automating model training and deployments Discover model serving approaches using Seldon and Intel OpenVino Get to grips with operating data science and machine learning workloads in OpenShift Who this book is for This book is for MLOps and DevOps engineers, data architects, and data scientists interested in learning the OpenShift platform. Particularly, developers who want to learn MLOps and its components will find this book useful. Whether you're a machine learning engineer or software developer, this book serves as an essential guide to building scalable and efficient machine learning workflows on the OpenShift platform.Table of ContentsIntroduction to MLOps and OpenShift Provisioning an MLOps platform in the Cloud Building Machine Learning Models Embedding ML Models into the Applications Deploying ML Models as a Service Operating ML workloads Building a face detector using the Red Hat ML Platform
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